BACKGROUND OF THE INVENTION
[0001] This invention relates to an antenna for radio frequency identification that performs
wireless identification, in particular, miniaturization thereof.
[0002] Conventionally, a technology has been proposed with which impedance matching of an
antenna for radio frequency identification (RFID) is established using an antenna
pattern existing parallel to a main antenna. Generally, the highest efficiency is
attained with an antenna having a length that is half of the wavelength of the frequency
(λ/2) used and there is also a case where a λ/4 grounded antenna is used for the sake
of miniaturization of a device (refer to US 6100804 B).
SUMMARY OF THE INVENTION
[0003] In the conventional technique described above, however, an antenna is constructed
of plural separated antenna patterns, thereby being difficult to realize a compact
antenna using such a construction.
[0004] RFID is attached to merchandise or a product so that merchandise control, product
quality control, or the like is performed by utilizing the ID number or the like possessed
by the RFID. Under the Radio Law in Japan, the main frequency bands that the RFID
can use are 2.45 GHz, 13.56 MHz, and 125 kHz. Even when 2.45 GHz is used, its half-wavelength
is approximately 6 cm. Thus, when importance is placed on the efficiency of an antenna,
the size of the antenna becomes as large as approximately 6 cm.
[0005] Here, the size (length, width) of the RFID is determined by the size of the antenna,
which results in a situation where the size of the RFID exceeds the size of merchandise
or a product to which the RFID is to be attached, assuming that the merchandise or
product is a small object such as a medicine bottle. Such a situation where the size
of the RFID exceeds the size of the merchandise or product, to which the RFID is to
be attached, is not preferable because there occur various problems in that the RFID
is peeled off during production, distribution, transportation, or the like of the
merchandise or product.
[0006] US 2003/063002 A1 discloses an antenna with the features of the pre-characterising
portion of appended claims 1 and 3.
[0007] EP 1 0055 943 a2 describes a microstrip patch designed as a resonant antenna.
[0008] It is desired to devise an antenna that can be unified and compact. It is therefore
an object of this invention to reduce the size of an antenna, thereby achieving a
reduction in size of the RFID itself using the antenna, and providing the RFID or
the like that does not exceed the size of an object to which the RFID or the like
is to be attached.
[0009] The object is met by the antennas defined in claims 1 and 3. The dependent claims
relate to preferred modifications of the invention.
[0010] According to the embodiment of this invention, it is possible to produce an integrated
and compact antenna.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The present invention can be appreciated by the description which follows in conjunction
with the following figures, wherein:
FIG. 1A is a plane view of RFID using an antenna according to a first embodiment of
this invention.
FIG. 1B is a cross-sectional view of the RFID taken along the line A-A' shown in FIG.
1A.
FIG. 2 is a block diagram showing a construction of the RFID according to the embodiment
of this invention.
FIG. 3 is a block diagram showing the principle of operation of the antenna for the
RFID according to the embodiment of this invention.
FIG. 4 is a characteristic diagram of the antenna for the RFID according to the embodiment
of this invention.
FIG. 5 is another characteristic diagram of the antenna for the RFID according to
the embodiment of this invention.
FIG. 6A is a plane view of RFID using an antenna according to a second embodiment
of this invention.
FIG. 6B is a cross-sectional view of the RFID taken along the line A-A' shown in FIG.
6A.
FIG. 7A is a plane view of RFID using an antenna according to a modification of the
second embodiment of this invention.
FIG. 7B is a cross-sectional view of the RFID taken along the line A-A' shown in FIG.
7A.
FIG. 8A is a plane view of RFID using an antenna according to a third embodiment of
this invention.
FIG. 8B is a cross-sectional view of the RFID taken along the line A-A' shown in FIG.
8A.
FIG. 9 is a perspective view of RFID using an antenna according to a fourth embodiment
of this invention.
FIG. 10A is a plane view of RFID using an antenna according to a fifth embodiment
of this invention.
FIG. 10B is a cross-sectional view of the RFID taken along the line A-A' shown in
FIG. 10A.
FIG. 11 is an explanatory diagram of a method of producing the RFID using the antenna
according to the fifth embodiment of this invention.
FIG. 12 is a plane view of RFID using an antenna according to a sixth embodiment of
this invention.
FIG. 13A is a plane view of RFID using an antenna according to a seventh embodiment
of this invention.
FIG. 13B is a cross-sectional view of the RFID taken along the line A-A' shown in
FIG. 13A.
FIG. 14A is a plane view of RFID using an antenna according to an eighth embodiment
of this invention.
FIG. 14B is an A-A' cross-sectional view of the RFID shown in FIG. 14A.
FIG. 15 is a perspective view of an embodiment where the RFID according to the embodiments
of this invention is affixed to a receiving container.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] When the size of an antenna is set smaller than the half-wavelength of the frequency
used, due to the properties thereof, it is impossible to obtain a resonant condition
so that efficient transmission and reception cannot be performed using effectively
the maximum electric power. Also, it is required to pass electric power with efficiency
at a connection from a high-frequency output circuit to an antenna and to prevent
a radio wave reflection problem from occurring. Therefore, in an embodiment of this
invention, a demerit resulting from a situation where no resonance is obtained due
to a reduction in size of an antenna to less than a half-wavelength is compensated
for by matching the impedance of the circuit (which is typically a semiconductor integrated
circuit) of RFID to that of the antenna.
[0013] The embodiments of this invention will now be described with reference to the accompanying
drawings.
[0014] FIG. 1A is a plane view of RFID using an antenna according to a first embodiment
of this invention and FIG. 1B is a cross-sectional view taken along the line A-A'
of FIG. 1A.
[0015] An antenna 101 is formed on a base film 106 using a conductive pattern and an opening
(in the following also referred to as slit) 102 is established in the antenna 101.
An RFID chip 103 is provided with a first bump 104 and a second bump 105 and the RFID
chip 103 and the antenna 101 are connected to each other through the bumps 104 and
105 serving as connection points. The impedance between the bumps 104 and 105 (input
impedance of the RFID chip 103) is adjusted to 60 Ω at 2.45 GHz, for instance. It
should be noted that a construction may also be used in which the length of the antenna
is shortened by using a high-dielectric-constant base material as the base film 106.
[0016] In the embodiment of this invention, by providing the antenna 101 with the slit 102,
impedance matching between the antenna 101 and the RFID chip 103 is established.
[0017] When a microwave of 2.45 GHz is irradiated to the antenna 101, a high-frequency current
is caused to flow through the antenna 101. Under this state, when matching is established
between the input impedance (60 Ω) of the RFID chip 103 and the impedance of the antenna,
the high-frequency current flowing through the antenna 101 can be supplied to the
RFID chip 103 with the highest efficiency. On the other hand, when the matching between
the input impedance of the RFID chip 103 and the impedance of the antenna is incomplete,
as the high-frequency current is reflected at the connection points (bumps 104 and
105) therebetween, sufficient energy cannot be supplied to the RFID chip 103 to operate.
As a result, the strength of a signal inputted into the RFID chip 103 is weakened.
[0018] FIG. 2 is a block diagram showing a construction of the RFID according to the embodiment
of this invention.
[0019] The RFID chip 103 includes a rectifier circuit 302, a clock extracting circuit 303,
a load switch 304, and a counter/memory circuit 305.
[0020] The antenna 101 is connected to the rectifier circuit 302. The high-frequency current
flowing through the antenna 101 is rectified by the rectifier circuit 302 and then
is inputted into the clock extracting circuit 303. In the clock extracting circuit
303, a clock width and a clock interval are extracted from a high-frequency carrier
with precision. An extracted low-frequency clock pulse is inputted into the counter/memory
circuit 305, which then performs processing such as certification of the RFID.
[0021] An output from the counter/memory circuit 305 is inputted into the load switch 304.
The load switch 304 is a switching device composed of MOSFETs and performs load modulation
by changing impedance with respect to the antenna 101 (impedance between the bumps
104 and 105). A modulated signal is transmitted from the antenna 101 to a reader for
the RFID as data.
[0022] The input impedance of the rectifier circuit 302 is determined by the value of its
internal load, in other words, the scheme adopted by the rectifier circuit 302, the
shape of rectifiers, the parasitic effect of the rectifier circuit, and the like.
In the high-frequency rectifier circuit 302, its parasitic capacitance is a significant
impedance factor. Therefore, when the matching between the antenna 101 and the rectifier
circuit 302 is insufficient, the energy from the antenna 101 is not sufficiently supplied
to the rectifier circuit 302. In order to establish matching at a high frequency,
an antenna line is required to be dealt with as a distributed constant circuit. It
is also required that the antenna 101 functions not only as a resonant circuit but
also as a matching circuit for the high-frequency current to the RFID chip. In this
case, the matching means a situation where the high-frequency current is inputted
from the antenna 101 to the RFID chip 103 without being reflected in a transition
portion to a different system (connection points between the antenna 101 and the RFID
chip 103).
[0023] Therefore, it is required to provide the antenna with a matching circuit. In the
embodiment of this invention, the slit 102 is formed in a terminal portion (between
the bumps 104 and 105) of the RFID chip 103. In other words, it is required that the
RFID chip 103 is provided at an end portion of the slit 102. This slit 102 is at the
same voltage in terms of a direct current. A current, however, flows in an alternating
manner, so a shape of the slit 102 is important. The slit 102 forms a current distributed
constant circuit with respect to the input terminals (bumps 104 and 105) of the RFID
chip 103.
[0024] FIG. 3 is a block diagram showing the principle of operation of the antenna for the
RFID according to the embodiment of this invention and shows the equivalent circuit
of the slit 102 when the antenna 101 is connected to the RFID chip 103.
[0025] The slit 102 constitutes the distributed constant circuit, an inductance L exists
along a slit length, and a capacitance C exists inversely proportional to a slit width.
The characteristic impedance of the distributed constant circuit is expressed by a
square root found by dividing the inductance L by the capacitance C. Consequently,
the slit length is in an approximately proportional relation with the inductance L
and when the slit length is lengthen, the inductance L is increased. The slit width
is in an approximately inversely proportional relation with the capacitance C and
when the slit width is widened, the capacitance C is decreased.
[0026] When matching is established by setting the terminals of the distributed constant
circuit so as to have the same impedance, energy can be transmitted without reflection.
When the slit width is increased, the capacitance C is decreased. Accordingly, in
order to maintain the characteristic impedance at the same level, it is required to
decrease the inductance L by electrically shortening the slit length.
[0027] Even when the input impedance of the RFID chip is changed, impedance matching can
be established by freely adjusting matching based on the slit length and the slit
width in the manner described above. Also, when the slit length is short, a compact
antenna can be easily realized. Further, with the large slit width, production accuracy
is not need to be very high (aluminum punching becomes usable, for instance), thereby
making it possible to produce an antenna at a low price.
[0028] FIG. 4 is a characteristic diagram of the antenna for the RFID according to the embodiment
of this invention and shows results of an experiment where a communication distance
between the antenna of the reader and the RFID is measured while changing the slit
length and the slit width of the antenna shown in FIG. 1.
[0029] In FIG. 4, results obtained by setting the slit length to 3 mm, 4 mm, and 5 mm are
shown in the diagram. It can be understood from this diagram that as the slit length
is shortened, the slit width, with which the maximum communication distance is obtained,
is increased and the range of the slit width where the maximum communication distance
(250 mm) is obtained with stability is widened. Also, as described with FIG. 3, when
the slit width is widened to reduce the capacitance C, it is required to reduce inductance
L in order to maintain the characteristic impedance at the same level. In other words,
it is required to electromagnetically shorten the slit length, which matches with
the measurement data in FIG. 4. In FIG. 4, the maximum communication distance is saturated
at 250 mm, which is not due to the antenna shape, but due to factors, such as an output
from the reader, and the like.
[0030] In this invention, adjustment of the size (length and width) of the slit in order
to establish impedance matching makes it possible to construct a compact antenna.
In other words, unlike in the conventional case, it is not required to use a pattern
separated from an antenna element, so an antenna can be constructed as being integrated,
rectangular, and compact. Further, by increasing the slit width, the slit length can
be shortened miniaturize the antenna. This means that it is possible to shorten the
whole of the antenna, and important conditions for constructing a compact antenna
with this invention have been determined. It can be understood from FIG. 4 that the
communication distance is stabilized with the slit width of 0.4 mm or more.
[0031] FIG. 5 is another characteristic diagram of the antenna for the RFID according to
the embodiment of this invention and shows the measurement data shown in FIG. 4 as
a relation between the slit width and the slit length.
[0032] FIG. 5 shows a region where a communication distance of 200 mm is obtained and a
region where the maximum communication distance (250 mm) is obtained.
[0033] It can be understood from FIG. 5 that it is possible to increase the slit width by
shortening the slit length. In addition, it also can be understood that when the slit
length is shortened, the allowable range of the slit width is widened. This is conceivably
because a strict distributed constant circuit becomes a mixed model of a distributed
constant circuit and a concentrated constant circuit, as the slit width is required
to be widened with the slit length shortened.
[0034] More specifically, when the slit length is 5 mm, it is required to construct the
antenna under a severe condition where the slit width is 0.4 mm while the size the
antenna being set so as to have a length that is equal to or more than the slit length
(5 mm). On the other hand, when the slit length is 3 mm, it is possible to obtain
the maximum communication distance with the slit width between 1.0 mm and 1.4 mm.
As a result, it is possible to produce a compact antenna with alleviated production
accuracy, using economical specifications, and at low cost.
[0035] As shown in FIG. 6A to FIG. 8B, the area of the antenna is the sum total of the area
of a conductor forming the antenna and the area of the slit. By setting a slit size
with the slit length being 2.4 mm through 3.0 mm, the slit width being 1.0 mm through
1.4 mm, and the slit area being 3.0 mm through 4.2 mm, a compact antenna can be produced
with maximum size (length or width) being 3.0 mm or less, while obtaining the maximum
communication distance or a communication distance close to maximum.
[0036] Also, as shown in FIG. 5 to FIG. 12, the maximum size (length or width) of the antenna
according to the embodiment of this invention is defined by the slit length and slit
width thereof and is determined by the size of greater one of the slit length and
the slit width.
[0037] In other words, when the slit length is greater than the slit width (slit length
> slit width), the antenna length is greater than the antenna width (antenna length
> antenna width) and the maximum size of the antenna is determined by the antenna
length. In this case, for instance, the maximum size of the antenna is the sum total
of the width of the conductor forming the antenna and the slit length. On the other
hand, when the slit length is smaller than the slit width (slit length < slit width),
the antenna length is smaller than the antenna width (antenna length < antenna width)
and the maximum size of the antenna is determined by the antenna width.
[0038] Accordingly, the maximum size of the antenna is to be the minimum at a point where
the antenna length and the antenna width are equal to each other (antenna length =
antenna width). In this case, for instance, the maximum size of the antenna is the
sum total of the width of the conductor forming the antenna and the slit width. In
other words, the maximum size of the antenna becomes the minimum when the slit length
and the slit width are set equal to each other. In FIG. 13, an example of an antenna
constructed in this manner is shown. Also, in FIG. 5, illustrated is a straight line
expressing points where the slit length and the slit width are equal to each other.
[0039] Consequently, when the slit is formed so as to have a slit size on the straight line
expressing the points where the slit length and the slit width are equal to each other
in the region shown in FIG. 5 where the maximum communication distance is obtained,
or in other words, when the slit is formed so that the slit length and the slit width
are equal to each other and is 2.0 mm through 2.4 mm, the maximum size of the antenna
becomes the minimum while the maximum communication distance being obtained.
[0040] As can be understood from FIG. 5, by constructing the antenna in the shape according
to the first embodiment of this invention, it is possible to produce a RFID chip where
the antenna is miniaturized and a practical communication distance is secured while
managing a reduction in communication distance due to the miniaturization. In addition,
miniaturization of the antenna also makes it possible to miniaturize the RFID provided
with the antenna, which widens the range of objects to which the RFID can be attached.
For instance, the RFID can be attached to the lid portion of a small medicine bottle
or the like.
[0041] FIG. 6A is a plane view of RFID using an antenna according to a second embodiment
of this invention and FIG. 6B is a cross-sectional view taken along the line A-A'
of FIG. 6A.
[0042] The antenna according to the second embodiment is a shortened antenna where the edge
of the antenna is set close to the slit by narrowing the outer width of the antenna
501 (by setting the width of the conductor forming the antenna to 1 mm or less, for
instance). It should be noted that each construction element that functions in the
same manner as in the first embodiment described above is given the same reference
numeral and the detailed description thereof will be omitted.
[0043] In the second embodiment, an antenna 501 is formed by a conductive pattern on a base
film 106 and a slit 102 is established in the antenna 501. Also, the antenna 501 is
connected to a first bump 104 and a second bump 105 provided for an RFID chip 103.
[0044] FIG. 7A is a plane view of RFID using an antenna as a modification according to the
second embodiment of this invention and FIG. 7B is a cross-sectional view taken along
the line A-A' of FIG. 7A.
[0045] In the modification according to the second embodiment, like in the first embodiment
shown in FIG. 6, an antenna 601 is formed by a conductive pattern on a base film 106
and a slit 602 is established in the antenna 601. Also, the antenna 601 is connected
to a first bump 104 and a second bump 105 provided for an RFID chip 103.
[0046] As described above, in the second embodiment, by narrowing the width of the electric
conductor forming the outer portion of the antenna, the slit length can be shortened
to make it further possible to miniaturize the antenna. Also, in the modification
shown in FIG. 7, with the slit width 602 partially enlarged, it is possible to further
shorten the slit length to miniaturize the antenna.
[0047] FIG. 8A is a plane view of RFID using an antenna according to a third embodiment
of this invention and FIG. 8B is a cross-sectional view taken along the line A-A'
of FIG. 8A.
[0048] The antenna according to the third embodiment is characterized in that a high-dielectric-constant
cover sheet 702 is provided for the upper surface of the antenna 601. It should be
noted that each construction element that functions in the same manner as in the first
or second embodiment described above is given the same reference numeral and the detailed
description thereof will be omitted.
[0049] In the third embodiment, an antenna 601 is formed by a conductive pattern on a high-dielectric-constant
base film 701 and a slit 602 is established in the antenna 601. Also, the antenna
601 is connected to a first bump 104 and a second bump 105 provided for an RFID chip
103.
[0050] As described above, in the third embodiment, the high-dielectric-constant cover sheet
702 is provided so as to cover the upper surface of the antenna 601 and the antenna
601 is sandwiched between the high-dielectric-constant base film 701 and the high-dielectric-constant
cover sheet 702. With this construction, a wavelength shortening effect is produced,
which makes it possible to miniaturize the antenna without shortening the communication
distance.
[0051] FIG. 9 is a perspective view of RFID using an antenna according to a fourth embodiment
of this invention.
[0052] The RFID according to the fourth embodiment is characterized in that a RFID chip
804 with electrodes provided on both surfaces thereof is used. It should be noted
that each construction element that functions in the same manner as in the first through
third embodiments described above is given the same reference numeral and the detailed
description thereof will be omitted.
[0053] An antenna 801 constituted of an electric conductor (conductive pattern provided
on a base film, for instance) is provided with a slit 802 and a folded portion 803
extending from the antenna conductor is folded to a position overlapping the antenna
801. Also, the RFID chip 804 with electrodes provided on both surfaces thereof is
arranged under the folded portion 803. In other words, one end of the antenna 801
is connected to one of the electrodes provided on the both surfaces of the RFID chip
804 and one end of the folded portion 803 is connected to the other of the electrodes
of the RFID chip 804.
[0054] Even with the structure according to the fourth embodiment, illustrated in FIG. 4
is the relation between the slit length and the slit width. In order to construct
an antenna having a short antenna length, it is important to shorten the slit length
and to widen the slit width.
[0055] As described above, in the fourth embodiment, a sandwich structure is adopted in
which the antenna 801 is folded and is connected to the electrodes provided on the
both surfaces of the RFID chip 804, so it becomes possible to produce a more compact
antenna.
[0056] FIG. 10A is a plane view of RFID using an antenna according to a fifth embodiment
of this invention and FIG. 10B is a cross-sectional view taken along the line A-A'
of FIG. 10A.
[0057] The antenna for the RFID according to the fifth embodiment is characterized in that
a slit is provided in a slanting direction. It should be noted that each construction
element that functions in the same manner as in the first through fourth embodiments
described above is given the same reference numeral and the detailed description thereof
will be omitted.
[0058] An antenna 910 through 911 provided on a base film 906 has a slit 802. The slit 802
constitutes a separation groove 908 by extending in a slanting direction and separates
the antenna into two end portions 910 and 911. The end portion 910 of the antenna
is connected to one of electrodes provided on the both surfaces of an RFID chip 804.
Also, the end portion 911 of the antenna is connected to a cover metal 903 provided
for a cover film 904.
[0059] The conductive cover metal 903 is provided on a lower surface of the cover film 904.
A layer of anisotropic conductive adhesives 905 is provided between the base film
906 and the cover film 904 (between the antenna 910 through 911 and the cover metal
903). The anisotropic conductive adhesives 905 do not have conductivity under an ordinary
state but exhibits conductivity through application of a pressure in a direction in
which the pressure is applied. Consequently, by applying a pressure at a short point
909 provided on an antenna 911 side on the base film 906 (applying a pressure from
a cover film 904 side as shown in FIG. 10, for instance), electrical continuity is
established between the antenna 911 of the base film 906 and the cover metal 903 of
the cover film 904.
[0060] One of the electrodes of the RFID chip 804 is connected to the end portion 910 of
the antenna. Also, the other of the electrodes of the RFID chip 804 is connected to
the cover metal 903 of the cover film 904.
[0061] Even with the structure according to the fourth embodiment, illustrated in FIG. 4
is the relation between the slit length and the slit width. In order to construct
an antenna having a short antenna length, it is important to shorten slit length and
to widen the slit width.
[0062] Next, by referring to FIG. 11, a method of producing the RFID shown in FIGS. 10A
and 10B will be described.
[0063] First, plural RFID chips 804 are mounted at predetermined positions on the base film
906 where plural antennas are continuously provided, and then the anisotropic conductive
adhesives 905 are arranged. Following this, the cover film 904 where plural cover
metals 903 are continuously provided is overlaid on the base film 906 and the short
points 909 are pressurized from the cover film 904 side. Finally, the base film 906
and the cover film 904 are cut along the lines C. In this manner, the RFID shown in
FIGS. 10A and 10B is produced.
[0064] As described above, in the fifth embodiment, providing the slit in a slanting direction
makes it possible to increase the tolerance to displacements of the arrangement position
of the RFID chip 804 and the position of the short point 909. As a result, the RFID
can be supplied at a low price.
[0065] FIG. 12 is a plane view of RFID using an antenna according to a sixth embodiment
of this invention.
[0066] The antenna for the RFID according to the sixth embodiment is characterized in that
the corner portions of the antenna according to the modification shown in FIG. 7 of
the second embodiment are removed. It should be noted that each construction element
that functions in the same manner as in the first through fifth embodiments described
above is given the same reference numeral and the detailed description thereof will
be omitted.
[0067] In this sixth embodiment, like in the modification shown in FIG. 7 of the second
embodiment, an antenna 601 is formed by a conductive pattern on a base film 106 and
a slit 602 is established in the antenna 601. In the sixth embodiment, even the corner
portions 1001 of the antenna 601 are removed, a high-frequency current mainly flows
in the vicinity of the center portion of the antenna 601 and does not flow in the
corner portions of the antenna 601. Therefore, even the corner portions of the antenna
601 are removed, no influences are exerted on the performance of the antenna. Also,
the antenna 601 is connected to a first bump 104 and a second bump 105 provided for
an RFID chip 103.
[0068] Even with the structure according to the sixth embodiment, illustrated in FIG. 4
is the relation between the slit length and the slit width. In order to construct
an antenna having a short antenna length, it is important to shorten the slit length
and widen the slit width.
[0069] As described above, in the sixth embodiment, removing the corner portions of the
antenna without exerting any influences on the performance of the antenna makes it
possible to miniaturize the antenna so as to realize RFID that can be attached in
a narrow and small space.
[0070] FIG. 13A is a plane view of RFID using an antenna according to a seventh embodiment
of this invention and FIG. 13B is a cross-sectional view taken along the line A-A'
of FIG. 13A.
[0071] The antenna for the RFID according to the seventh embodiment is characterized in
that it has a quadrangular shaped. It should be noted that each construction element
that functions in the same manner as in the first through sixth embodiments described
above is given the same reference numeral and the detailed description thereof will
be omitted.
[0072] In the seventh embodiment, an antenna 1201 having a quadrangular shape is formed
by a conductive pattern on a base film 1202 having a quadrangular shape and a slit
having a quadrangular shape is established in the antenna 1201. In other words, a
shape is used in which the length of the slit and the width of the slit are set equal
to each other or approximately equal to each other. Also, the antenna 1201 is connected
to a first bump 104 and a second bump 105 provided for an RFID chip 103.
[0073] FIG. 14A is a plane view of RFID using an antenna according to a eighth embodiment
of this invention and FIG. 14B is a cross-sectional view taken along the line A-A'
of FIG. 14A.
[0074] The antenna for the RFID according to the eighth embodiment is characterized in that
it has a circular shape. It should be noted that each construction element that functions
in the same manner as in the first through seventh embodiments described above is
given the same reference numeral and the detailed description thereof will be omitted.
[0075] In the eighth embodiment, an antenna 1301 having a circular shape is formed by a
conductive pattern on a base film 1302 having a circular shape and a slit having a
circular shape is established in the antenna 1301. In other words, a shape is used
in which the length of the slit and the width of the slit are set equal to each other
or approximately equal to each other. Also, the antenna 1301 is connected to a first
bump 104 and a second bump 105 provided for an RFID chip 103.
[0076] Even with the structures according to the seventh and eighth embodiments, illustrated
in FIG. 4 is the relation between the slit length and the slit width. In the seventh
embodiment, the slit length and the slit width are set approximately equal to each
other. In other words, in this invention, the shortening of the slit length is approximately
equal to the widening of the slit width and the seventh embodiment is based on the
essence of this invention. It should be noted that the circuit with the circular-shaped
slit as in the eighth embodiment can be the equivalent circuit same as that with the
quadrangular-shaped slit.
[0077] As described above, in the seventh and eighth embodiments, setting the slit length
and the slit width approximately equal to each other makes it possible to miniaturize
the antenna without exerting any influences on the performance of the antenna so as
to realize RFID that can be attached in a narrow and small space.
[0078] FIG. 15 is a perspective view of an embodiment where the RFID according to the embodiments
of this invention is affixed to a receiving container (e.g. bottle).
[0079] An RFID chip provided with the compact antenna according to this invention is attached
to a lid portion 1103 of the container. Containers (bottles) made of glass, plastic,
or another material are used in various fields in order to store or keep various medicines
or samples, although there is a case where the mixing of foreign matters into the
contents, the chemical reaction of the contents, or the like occurs during production
or keeping. Therefore, it is required to periodically check the contents during the
production or keeping. In order to automatically register results of the check in
a computer, it is desirable that the container can be automatically identified. Conventionally,
for the sake of the automatic identification, a barcode, an IC chip for wireless identification,
or the like were attached to such a container. In this case, however, when the container
is small, no space for affixation of a label for identification is found on the top
surface or the bottom surface of the container and the label is affixed to the periphery
of the container, which leads to a problem that the label interferes with the observation
of the contents. With the RFID chip using the compact antenna according to this invention
is attached to the lid of the bottle no matter to which position a main body 1104
of the bottle is rotated, it is possible to read the chip with ease.
[0080] The antenna according to this invention can be applied to an RFID chip. As the antenna
can be miniaturized, it is suitable to be provided for the RFID that should be compact
for application to the merchandise management at stores, the identification of medicines
or samples, tickets for transportation or entertainment, or the like.
[0081] While the present invention has been described in detail and pictorially in the accompanying
drawings, the present invention is not limited to such detail but covers various obvious
modifications and equivalent arrangements, which fall within the purview of the appended
claims.
1. A non-resonant antenna designed to operate at substantially 2.45 GHz and connected
to an IC chip (103) for wireless identification, the antenna (101 ,501, 601 801, 910)
comprising a conductor having an opening (102) and two connection points (104, 105)
separated by the opening (102), characterised in that
the length of the opening (102) is in the range of 2.4 mm to 3.0 mm,
the width of the opening (102) is in the range of 1.0 mm to 1.4 mm, and
the area of the opening (102) is in the range of 3.0 mm2 to 4.2 mm2.
2. The antenna of claim 1, wherein the length of the opening (102) is substantially 3
mm.
3. A non-resonant antenna designed to operate at substantially 2.45 GHz and connected
to an IC chip (103) for wireless identification, wherein the antenna (1201, 1301)
comprises a conductor having an opening (102) and two connection points (104, 105)
separated by the opening (102),
characterised in that the length and the width of the opening (102) are substantially equal and are both
in the range of 2.0 mm to 2.4 mm.
4. The antenna of claim 1 or 2, wherein
the frequency of a radio wave irradiated to the antenna (101) is substantially 2.45
GHz, and
the input impedance of the IC chip (103) is substantially 60 Ω.
5. The antenna of claim 1, being formed between a base film (906) and a cover film (904),
wherein
the cover film (904) having an electric conductor is provided on at least a part of
the base film (906),
the antenna (910) formed on the base film (906) and the electric conductor of the
cover film (904) are connected at a short point (909), and
the IC chip (804) is arranged between the base film (906) and the cover film (904)
and is connected to both of them.
6. The antenna of claim 5, wherein the antenna (910) formed on the base film (906) and
the electric conductor of the cover film (904) are connected at the short point by
the anisotropic conductive adhesives (905) arranged between the base film (906) and
the cover film (904).
7. The antenna of claim 1, wherein
the antenna (801) has an extending folded portion (803),
the folded portion (803) is folded to a position overlapping the antenna (801),
the IC chip (804) has terminals for connection on its both surfaces, and
the antenna (801) and the folded portion (803) are connected to the IC chip (804).
8. The antenna of claim 1, which is formed on a high-dielectric-constant base film (701)
and covered with a high-dielectric-constant cover sheet (702).
9. The antenna of claim 1, which has a rectangular shape with corner portions (1001)
of the antenna (601) being removed in a slanting direction.
10. A radio frequency identifier comprising the antenna (101) of any preceding claim.
11. A container for holding a powder or a liquid, including the radio frequency identifier
of claim 10, wherein the radio frequency identifier is provided in a main body portion
(1104) or a lid portion (1103) of the container.
12. The antenna of claim 1, further comprising a base film (106), wherein the conductor
is formed on the base film (106), and the base film (106) is preferably made of a
material having a high dielectric constant.
1. Nicht-resonante Antenne, die zum Betrieb bei im wesentlichen 2,45 GHz ausgelegt und
an einen IC-Chip (103) zur drahtlosen Identifikation angeschlossen ist, wobei die
Antenne (101, 501, 601, 801, 910) einen Leiter mit einer Öffnung (102) und zwei durch
die Öffnung (102) getrennten Anschlußpunkten (104, 105) aufweist, dadurch gekennzeichnet, daß
die Länge der Öffnung (102) zwischen 2,4 mm und 3,0 mm beträgt,
die Breite der Öffnung (102) zwischen 1,0 mm und 1,4 mm beträgt, und
die Fläche der Öffnung (102) zwischen 3,0 mm2 und 4,2 mm2 beträgt.
2. Antenne nach Anspruch 1, wobei die Länge der Öffnung (102) im wesentlichen 3 mm beträgt.
3. Nicht-resonante Antenne, die zum Betrieb bei im wesentlichen 2,45 GHz ausgelegt und
an einen IC-Chip (103) zur drahtlosen Identifikation angeschlossen ist, wobei die
Antenne (1201, 1301) einen Leiter mit einer Öffnung (102) und zwei durch die Öffnung
(102) getrennten Anschlußpunkten (104, 105) aufweist,
dadurch gekennzeichnet, daß die Länge und die Breite der Öffnung (102) im wesentlichen gleich sind und beide
zwischen 2,0 mm und 2,4 mm betragen.
4. Antenne nach Anspruch 1 oder 2, wobei
die Frequenz einer auf die Antenne (101) ausgesendeten Funkwelle im wesentlichen 2,45
GHz beträgt, und
die Eingangsimpedanz des IC-Chips (103) im wesentlichen 60 Ω beträgt.
5. Antenne nach Anspruch 1, die zwischen einem Basisfilm (906) und einem Deckfilm (904)
gebildet ist, wobei
der Deckfilm (904) mit einem elektrischen Leiter auf wenigstens einem Teil des Basisfilms
(906) aufgebracht ist,
die auf dem Basisfilm (906) gebildete Antenne (910) und der elektrische Leiter des
Deckfilms (904) an einem Kurzkontaktpunkt (909) verbunden sind, und
der IC-Chip (804) zwischen dem Basisfilm (906) und dem Deckfilm (904) angeordnet und
mit diesen beiden verbunden ist.
6. Antenne nach Anspruch 5, wobei die auf dem Basisfilm (906) gebildete Antenne (910)
und der elektrische Leiter des Deckfilms (904) an dem Kurzkontaktpunkt durch die anisotropen
leitfähigen Klebemittel (905) angeschlossen sind, die zwischen dem Basisfilm (906)
und dem Deckfilm (904) angebracht sind.
7. Antenne nach Anspruch 1, wobei
die Antenne (801) einen gefalteten Verlaufsabschnitt (803) aufweist,
der gefaltete Abschnitt (803) zu einer Position gefaltet ist, die die Antenne (801)
überlappt,
der IC-Chip (804) Anschlüsse zur Verbindung auf seinen beiden Oberflächen aufweist,
und
die Antenne (801) und der gefaltete Abschnitt (803) an den IC-Chip (804) angeschlossen
sind.
8. Antenne nach Anspruch 1, die auf einem Basisfilm (701) mit hoher Dielektrizitätskonstante
gebildet ist und die durch eine Decklage (702) mit hoher Dielektrizitätskonstante
abgedeckt ist.
9. Antenne nach Anspruch 1, die eine rechteckige Form aufweist, wobei Eckabschnitte (1001)
der Antenne (601) in einer schräg verlaufenden Richtung entfernt sind.
10. Funkfrequenz-Identifiziereinrichtung mit der Antenne (101) nach einem der vorstehenden
Ansprüche.
11. Behälter zum Aufnehmen eines Pulvers oder einer Flüssigkeit, der die Funkfrequenz-Identifiziereinrichtung
gemäß Anspruch 10 aufweist, wobei die Funkfrequenz-Identifiziereinrichtung auf einem
Hauptkörperabschnitt (1104) oder einem Deckelabschnitt (1103) des Behälters angebracht
ist.
12. Antenne nach Anspruch 1, ferner mit einem Basisfilm (106), wobei der Leiter auf dem
Basisfilm (106) gebildet ist, und der Basisfilm (106) vorzugsweise aus einem Material
mit hoher Dielektrizitätskonstante hergestellt ist.
1. Antenne apériodique conçue pour fonctionner sensiblement à 2,45 GHz et connectée à
une puce IC (103) pour une identification sans fil, l'antenne (101, 501, 601, 801,
910) comportant un conducteur ayant une ouverture (102) et deux points de connexion
(104, 105) séparés par l'ouverture (102), caractérisée en ce que
la longueur de l'ouverture (102) est comprise dans la plage de 2,4 mm à 3,0 mm,
la largeur de l'ouverture (102) est comprise dans la plage de 1,0 mm à 1,4 mm, et
la zone de l'ouverture (102) est comprise dans la plage de 3,0 mm2 à 4,2 mm2.
2. Antenne selon la revendication 1, dans laquelle la longueur de l'ouverture (102) est
sensiblement de 3 mm.
3. Antenne apériodique conçue pour fonctionner sensiblement à 2,45 GHz et connectée à
une puce IC (103) pour une identification sans fil, l'antenne (1201, 1301) comportant
un conducteur ayant une ouverture (102) et
deux points de connexion (104, 105) séparés par l'ouverture (102),
caractérisée en ce que la longueur et la largeur de l'ouverture (102) sont sensiblement égales et sont toutes
les deux comprises dans la plage de 2,0 mm à 2,4 mm.
4. Antenne selon la revendication 1 ou 2, dans laquelle
la fréquence d'une onde radio irradiée sur l'antenne (101) est sensiblement de 2,45
GHz, et
l'impédance d'entrée de la puce IC (103) est sensiblement de 60 Ω.
5. Antenne selon la revendication 1, étant formée entre un film de base (906) et un film
de recouvrement (904), dans laquelle
le film de recouvrement (904) ayant un conducteur électrique est agencé sur au moins
une partie du film de base (906),
l'antenne (910) formée sur le film de base (906) et le conducteur électrique du film
de recouvrement (904) sont connectés à un point de court-circuit (909), et
la puce IC (804) est agencée entre le film de base (906) et le film de recouvrement
(904) et est connectée aux deux.
6. Antenne selon la revendication 5, dans laquelle l'antenne (910) formée sur le film
de base (906) et le conducteur électrique du film de recouvrement (904) sont connectés
au point de court-circuit par les adhésifs conducteurs anisotropes (905) agencés entre
le film de base (906) et le film de recouvrement (904).
7. Antenne selon la revendication 1, dans laquelle
l'antenne (801) a une partie repliée en extension (803),
la partie repliée (803) est repliée à une position recouvrant l'antenne (801),
la puce IC (804) a des bornes pour une connexion sur ses deux surfaces, et
l'antenne (801) et la partie repliée (803) sont connectées à la puce IC (804).
8. Antenne selon la revendication 1, laquelle est formée sur un film de base à constante
diélectrique élevée (701) et recouverte d'une feuille de recouvrement à constante
diélectrique élevée (702).
9. Antenne selon la revendication 1, laquelle a une forme rectangulaire avec des parties
de coin (1001) de l'antenne (601) qui sont supprimées dans une direction oblique.
10. Identificateur radiofréquence comportant l'antenne (101) selon l'une quelconque des
revendications précédentes.
11. Conteneur pour contenir une poudre ou un liquide, incluant l'identificateur radiofréquence
selon la revendication 10, dans lequel l'identificateur radiofréquence est agencé
dans une partie de corps principal (1104) ou une partie de capot (1103) du conteneur.
12. Antenne selon la revendication 1, comportant en outre un film de base (106), le conducteur
étant formé sur le film de base (106), et le film de base (106) étant de manière préférée
constitué d'un matériau ayant une constante diélectrique élevée.